EP3421752B1 - Abgaskrümmersystem für turboladervorrichtung mit mehreren spiralelementen - Google Patents

Abgaskrümmersystem für turboladervorrichtung mit mehreren spiralelementen Download PDF

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Publication number
EP3421752B1
EP3421752B1 EP18171726.5A EP18171726A EP3421752B1 EP 3421752 B1 EP3421752 B1 EP 3421752B1 EP 18171726 A EP18171726 A EP 18171726A EP 3421752 B1 EP3421752 B1 EP 3421752B1
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EP
European Patent Office
Prior art keywords
manifold
valve
arrangement
volute
exhaust gas
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP18171726.5A
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English (en)
French (fr)
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EP3421752A1 (de
Inventor
Darius Mehta
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Garrett Transportation I Inc
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Garrett Transportation I Inc
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Publication date
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Publication of EP3421752A1 publication Critical patent/EP3421752A1/de
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02CGAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
    • F02C6/00Plural gas-turbine plants; Combinations of gas-turbine plants with other apparatus; Adaptations of gas- turbine plants for special use
    • F02C6/04Gas-turbine plants providing heated or pressurised working fluid for other apparatus, e.g. without mechanical power output
    • F02C6/10Gas-turbine plants providing heated or pressurised working fluid for other apparatus, e.g. without mechanical power output supplying working fluid to a user, e.g. a chemical process, which returns working fluid to a turbine of the plant
    • F02C6/12Turbochargers, i.e. plants for augmenting mechanical power output of internal-combustion piston engines by increase of charge pressure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N13/00Exhaust or silencing apparatus characterised by constructional features ; Exhaust or silencing apparatus, or parts thereof, having pertinent characteristics not provided for in, or of interest apart from, groups F01N1/00 - F01N5/00, F01N9/00, F01N11/00
    • F01N13/08Other arrangements or adaptations of exhaust conduits
    • F01N13/10Other arrangements or adaptations of exhaust conduits of exhaust manifolds
    • F01N13/107More than one exhaust manifold or exhaust collector
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B37/00Engines characterised by provision of pumps driven at least for part of the time by exhaust
    • F02B37/02Gas passages between engine outlet and pump drive, e.g. reservoirs
    • F02B37/025Multiple scrolls or multiple gas passages guiding the gas to the pump drive
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02CGAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
    • F02C7/00Features, components parts, details or accessories, not provided for in, or of interest apart form groups F02C1/00 - F02C6/00; Air intakes for jet-propulsion plants
    • F02C7/04Air intakes for gas-turbine plants or jet-propulsion plants
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01NGAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR MACHINES OR ENGINES IN GENERAL; GAS-FLOW SILENCERS OR EXHAUST APPARATUS FOR INTERNAL COMBUSTION ENGINES
    • F01N2240/00Combination or association of two or more different exhaust treating devices, or of at least one such device with an auxiliary device, not covered by indexing codes F01N2230/00 or F01N2250/00, one of the devices being
    • F01N2240/36Combination or association of two or more different exhaust treating devices, or of at least one such device with an auxiliary device, not covered by indexing codes F01N2230/00 or F01N2250/00, one of the devices being an exhaust flap
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B39/00Component parts, details, or accessories relating to, driven charging or scavenging pumps, not provided for in groups F02B33/00 - F02B37/00
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D13/00Controlling the engine output power by varying inlet or exhaust valve operating characteristics, e.g. timing
    • F02D13/02Controlling the engine output power by varying inlet or exhaust valve operating characteristics, e.g. timing during engine operation
    • F02D13/0242Variable control of the exhaust valves only
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F05INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
    • F05DINDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
    • F05D2220/00Application
    • F05D2220/40Application in turbochargers
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/10Internal combustion engine [ICE] based vehicles
    • Y02T10/12Improving ICE efficiencies

Definitions

  • the present disclosure generally relates to a turbocharger system and, more particularly, relates to an exhaust manifold system for a turbocharger device with plural volute members, as e.g. known from WO 2015/027335 A1 or US 2013/0111899 A1 .
  • turbochargers include a turbine wheel and a compressor wheel mounted on a common shaft and carried within isolated turbine and compressor housings, respectively.
  • the turbine wheel may be driven in rotation by exhaust gas output by the engine. This, in turn, rotates the compressor wheel for compressing air that is fed to the combustion chambers of the engine. Accordingly, the turbocharger may provide a performance boost and increased efficiency to the engine.
  • Turbocharger systems may operate in a number of conditions.
  • the turbocharger may operate at relatively low engine speeds, relatively high engine speeds, and at speeds therebetween.
  • the turbocharger system may operate at times when the exhaust mass flow is relatively high, low, and therebetween.
  • turbocharger system according to independent device claim 1 and a method of operating a turbocharger system according to independent method claim 12.
  • example embodiments disclosed herein include a turbocharger system with improved characteristics.
  • example embodiments include a turbocharger system with at least two volute members (e.g., scrolls) and an exhaust manifold system configured to direct exhaust gas flow from a plurality of engine combustion chambers to the volute members.
  • the manifold system may define a first manifold arrangement and a second manifold arrangement.
  • the first manifold arrangement may receive exhaust gas from a first group of the engine combustion chambers and direct the flow to a first volute member.
  • the second manifold arrangement may receive exhaust gas from a second group of the engine combustion chambers and direct the flow to a second volute member.
  • the first manifold arrangement may be fluidly disconnected from the second manifold arrangement.
  • the first manifold arrangement may include a first manifold and a second manifold. Under some operating conditions (e.g., at relatively low engine speeds), exhaust may flow via the first manifold from the first group of combustion chambers to the first volute member. In other operating conditions (e.g., at relatively high engine speeds), exhaust may flow via the first and second manifolds from the first group of combustion chambers to the first volute member.
  • the second manifold arrangement may include features that are similar to the first manifold arrangement. Accordingly, the second manifold arrangement may include a first manifold and a second manifold. Under some operating conditions, exhaust may flow via the first manifold from the second group of combustion chambers to the second volute member. In other operating conditions, exhaust may flow via the first and second manifolds from the second group of combustion chambers to the second volute member.
  • the available volume for exhaust gas flow through the first and second manifold arrangements may be selectively changed, for example, based on current operating conditions.
  • the first manifold arrangement and the second manifold arrangement may remain fluidly disconnected from each other at the different operating conditions.
  • the manifold system of the present disclosure may provide increased efficiency at some operating conditions (e.g., low engine speeds) due to the separate flow paths from the combustion chambers to the respective volute members.
  • the manifold system may allow the available volume for exhaust gas to be selectively increased at other operating conditions (e.g., high engine speeds) to maintain operating efficiency.
  • valves may be included for controlling flow through the first and/or second manifold arrangements.
  • FIG. 1 is a schematic view of an example turbocharger system 100 that includes a turbocharger housing 101 and a rotor 102.
  • the rotor 102 is configured to rotate within the turbocharger housing 101 about an axis 103 (axis of rotor rotation).
  • the rotor 102 may be supported for rotation about the axis 103 via one or more bearings (not shown).
  • the rotor 102 may be rotationally supported by thrust bearings and a plurality of journal bearings. Alternatively, other bearings may be included.
  • the turbocharger housing 101 may include a turbine housing 105, a compressor housing 107, and a bearing housing 109.
  • the bearing housing 109 may be disposed between the turbine and compressor housings 105, 107.
  • the bearing housing 109 may contain the bearings of the rotor 102.
  • the rotor 102 includes a turbine wheel 111, a compressor wheel 113, and a shaft 115.
  • the turbine wheel 111 is located substantially within the turbine housing 105.
  • the compressor wheel 113 is located substantially within the compressor housing 107.
  • the shaft 115 extends along the axis 103, through the bearing housing 109, to connect the turbine wheel 111 to the compressor wheel 113. Accordingly, the turbine wheel 111 and the compressor wheel 113 may rotate together about the axis 103.
  • the turbine housing 105 and the turbine wheel 111 cooperate to form a turbine (i.e., turbine section, turbine stage) configured to circumferentially receive a high-pressure and high-temperature exhaust gas stream (collectively referred to with reference number 121) from a plurality of combustion chambers 124 of an internal combustion engine 125.
  • the exhaust gas stream 121 may be delivered via an exhaust manifold system 191.
  • the exhaust manifold system 191 may include one or more structures that include two or more exhaust passages, pathways, lines, etc. for routing exhaust gas from the plurality of combustion chambers 124 to the turbine housing 105.
  • the turbine wheel 111 (and thus the rotor 102) is driven in rotation around the axis 103 by the high-pressure and high-temperature exhaust gas stream 121.
  • the turbine housing 105 may also be connected to a downstream exhaust structure 126 (e.g., one or more downstream exhaust pipes).
  • the turbine housing 105 may release an exhaust gas stream 127 thereto.
  • the exhaust gas stream 127 can be lower-pressure and lower-temperature compared to the exhaust gas stream 121.
  • the turbine housing 105 may include one or more structures that define distinct flow passages for exhaust gas delivered by the manifold system 191.
  • the turbine housing 105 may include a first member 196 (e.g., a first scroll structure) and a second member 198 (e.g., a second scroll structure).
  • the first and/or second members 196, 198 may define distinct volute passages (i.e., volute flow paths) that spiral about the axis 103 and about the turbine wheel 111.
  • the first and second members 196, 198 may comprise a twin scroll arrangement of the turbine housing 105.
  • first member 196 and the second member 198 may be constructed from two parts that are removably attached. In other embodiments, the first member 196 and the second member 198 may be integrally connected and may define a unitary, one piece structure. Furthermore, it will be appreciated that the turbine housing 105 may include more than two volute passages without departing from the scope of the present disclosure.
  • the compressor housing 107 and compressor wheel 113 cooperate to form a compressor (i.e., compressor section, compressor stage).
  • the compressor wheel 113 being driven in rotation by the exhaust-gas driven turbine wheel 111, is configured to compress received input air 131 (e.g., ambient air, or already-pressurized air from a previous-stage in a multi-stage compressor) into a pressurized air stream 133 that is ejected circumferentially from the compressor housing 107.
  • the compressor housing 107 may have a shape (e.g., a volute shape or otherwise) configured to direct and pressurize the air blown from the compressor wheel 113. Due to the compression process, the pressurized air stream is characterized by an increased temperature, over that of the input air 131.
  • the air stream 133 may be channeled through an air cooler 135 (i.e., an intercooler), such as a convectively cooled charge air cooler.
  • the air cooler 135 may be configured to dissipate heat from the air stream 133, increasing its density.
  • the resulting cooled and pressurized air stream 137 is channeled into an intake manifold 139 of the internal combustion engine 125, or alternatively, into a subsequent-stage, in-series compressor.
  • the operation of the system may be controlled by an engine control unit (ECU) 151 that connects to the remainder of the system via communication connections 153.
  • the ECU 151 may include a processor 199, which is connected to one or more sensors 189.
  • the sensor 189 may be configured to detect various conditions relating to the turbocharger system 100. In some embodiments, for example, the sensor 189 may detect various conditions related to the operation of the engine 125 (e.g., engine speed, exhaust gas mass flow output, etc.).
  • the sensor 189 may provide signals to the processor 199 that correspond to the detected condition(s).
  • the processor 199 may, in turn, process the signal(s) and generate control signals for controlling elements of the system 100 as will be discussed in detail below.
  • the processor 199 and/or sensor 189 may rely on a virtual sensor or predetermined model for detecting the operating conditions of the engine 125 and controlling the system 100.
  • turbocharger system 100 and the valve structure 190 may be arranged and configured differently from the embodiment of FIG. 1 without departing from the scope of the present disclosure.
  • FIG. 1 schematically illustrates the turbocharger system 100, the manifold system 191, the IC engine 125, and other components. Therefore, these components are not necessarily drawn to scale, connections between parts are shown conceptually, etc.
  • the engine 125 may include a plurality of combustion chambers 124. There may be any number of combustion chambers 124, and the combustion chambers 124 may have a variety of configurations (e.g., a V-configuration, a straight-configuration, a flat-configuration, etc.) without departing from the scope of the present disclosure.
  • the engine 125 may be a six-cylinder engine in some embodiments such that the plurality of combustion chambers 124 includes a first chamber 202, a second chamber 204, a third chamber 206, a fourth chamber 208, a fifth chamber 210, and a sixth chamber 212.
  • the first, second, and third chambers 202, 204, 206 may comprise a first group of chambers 207.
  • the fourth, fifth, and sixth chambers 208, 210, 212 may comprise a second group of chambers 213.
  • the first group of chambers 207 may be positioned in the engine 125 in an area that is opposite that of the second group of chambers 213.
  • the first group of chambers 207 may be positioned generally in the front of the engine 125 while the second group of chambers 213 may be positioned generally in the rear of the engine 125.
  • the combustion chambers 124 may have a predetermined firing order (i.e., sequence of power delivery from each chamber 124). It will be appreciated that the firing order may be achieved by controlled sparking of spark plugs for the respective chambers 124, or in the case of a diesel engine, by controlling the sequence of fuel injection into the chambers 124. In some embodiments, the combustion chambers 124 may have the following sequential firing order: the first chamber 202, the fifth chamber 210, the third chamber 206, the sixth chamber 212, the second chamber 204, and then the fourth chamber 208. However, it will be appreciated that the firing order may be different without departing from the scope of the present disclosure.
  • the first combustion chamber 202 may include a first exhaust port 232 and a second exhaust port 233. Accordingly, in some embodiments, the first combustion chamber 202 may include dual exhaust ports. The first exhaust port 232 and the second exhaust port 233 may be configured for exhausting gas from the first combustion chamber 202 and delivering the exhaust gas to the exhaust manifold system 191.
  • the first engine valve 235 may be a conventional valve that is supported by the engine 125 (e.g., proximate the cylinder head). The first engine valve 235 may move between a CLOSED position and an OPEN position. Also, the position of the first engine valve 235 may be controlled by the ECU 151 in some embodiments.
  • the second exhaust port 233 may also include a second engine valve 237, which may be substantially similar to the first engine valve 235.
  • the second combustion chamber 204 may respectively include a first exhaust port 236 and a second exhaust port 239.
  • the third combustion chamber 206 may respectively include a first exhaust port 240 and a second exhaust port 241.
  • the first exhaust ports 236, 240 may include respective first engine valves 235.
  • the second exhaust ports 239, 241 may include respective second engine valves 237.
  • the fourth combustion chamber 208 may include a first exhaust port 266 and a second exhaust port 268.
  • the fifth combustion chamber 210 may include a first exhaust port 270 and a second exhaust port 272.
  • the sixth combustion chamber 212 may include a first exhaust port 274 and a second exhaust port 276.
  • the first exhaust ports 266, 270, 274 may include respective first engine valves 235.
  • the second exhaust ports 268, 272, 276 may include respective second engine valves 237.
  • FIG. 2 also shows the turbine housing of the turbocharger system 100.
  • the turbine housing 105 may include the first member 196 (e.g., first scroll) and the second member 198 (e.g., second scroll).
  • the first member 196 may define a first volute passage 214
  • the second structure 198 may define a second volute passage 216 for the turbocharger system 100.
  • the manifold system 191 may include a first manifold arrangement 218.
  • the first manifold arrangement 218 may include one or more structures (e.g., pipes, conduits, lines, etc.).
  • the first manifold arrangement 218 may be configured to route exhaust gas from the first group 207 of the combustion chambers 124 to the first member 196 and the first volute passage 214 therein.
  • the manifold system 191 may also include a second manifold arrangement 222.
  • the second manifold arrangement 222 may include one or more structures (e.g., pipes, conduits, lines, etc.).
  • the second manifold arrangement 222 may be configured to route exhaust gas from the second group 213 of the combustion chambers 124 to the second structure 198 and the second volute passage 216 therein.
  • the first manifold arrangement 218 may be fluidly disconnected from the second manifold arrangement 222. As such, flow from the first group 207 of combustion chambers 124 to the first volute passage 214 may be independent of the flow from the second group 213 of combustion chambers 124 to the second volute passage 216.
  • the first manifold arrangement 218 may include a number of manifold structures, branches, lines, etc. for fluidly connecting to the combustion chambers 124 of the first group 207 and for fluidly connecting to the first volute passage 214.
  • the first manifold arrangement 218 may include a first manifold 226 and a second manifold 228.
  • the first manifold 226 may include a first segment 230 that is fluidly connected to the first exhaust port 232 of the first chamber 202, a second segment 234 that is fluidly connected to the first exhaust port 236 of the second chamber 204, and a third segment 238 that is fluidly connected to the first exhaust port 240 of the third chamber 206.
  • the first segment 230, the second segment 234, and the third segment 238 may be joined at a first fluid junction 242.
  • the first manifold 226 may additionally include an intermediate segment 244 that extends away from the first fluid junction 242 and that directs the exhaust gas in a downstream direction therefrom.
  • the second manifold 228 may include a first segment 246 that is fluidly connected to the second exhaust port 233 of the first chamber 202, a second segment 250 that is fluidly connected to the second exhaust port 239 of the second chamber 204, and a third segment 254 that is fluidly connected to the second exhaust port 241 of the third chamber 206.
  • the first segment 246, the second segment 250, and the third segment 254 may be joined at a second fluid junction 258.
  • the second manifold 228 may additionally include an intermediate segment 260 that extends away from the second fluid junction 258 and that directs the exhaust gas in a downstream direction therefrom.
  • first manifold 226 and the second manifold 228 may be fluidly connected at a third fluid junction 262, which may be disposed upstream of the first volute passage 214.
  • first manifold arrangement 218 may include a common segment 264.
  • the common segment 264 may be fluidly connected to the third fluid junction 262 and the first volute passage 214. It will be appreciated that the third fluid junction 262 and the common segment 264 are optional components and that the first and second manifolds 226, 228 may fluidly connect to the first member 196 independent of each other.
  • the second manifold arrangement 222 may include a number of manifold structures, branches, lines, etc. for fluidly connecting to the combustion chambers 124 of the second group 213 and for fluidly connecting to the second volute passage 216.
  • the second manifold arrangement 222 may include a first manifold 278 and a second manifold 280.
  • the first manifold 278 may include a first segment 282 that is fluidly connected to the first exhaust port 266 of the fourth chamber 208, a second segment 284 that is fluidly connected to the first exhaust port 270 of the fifth chamber 210, and a third segment 286 that is fluidly connected to the first exhaust port 274 of the sixth chamber 212.
  • the first segment 282, the second segment 284, and the third segment 286 may be joined at a fourth fluid junction 288.
  • the first manifold 278 may additionally include an intermediate segment 290 that extends away from the fourth fluid junction 288 and that directs the exhaust gas in a downstream direction therefrom.
  • the second manifold 280 may include a first segment 281 that is fluidly connected to the second exhaust port 268 of the fourth chamber 208, a second segment 283 that is fluidly connected to the second exhaust port 272 of the fifth chamber 210, and a third segment 285 that is fluidly connected to the second exhaust port 276 of the sixth chamber 212.
  • the first segment 281, the second segment 283, and the third segment 285 may be joined at a fifth fluid junction 292.
  • the second manifold 280 may additionally include an intermediate segment 294 that extends away from the fifth fluid junction 292 and that directs the exhaust gas in a downstream direction therefrom.
  • first manifold 278 and the second manifold 280 may be fluidly connected at a sixth fluid junction 296, which may be disposed upstream of the second volute passage 216.
  • first manifold arrangement 218 may include a common segment 298.
  • the common segment 298 may be fluidly connected to the sixth fluid junction 296 and the second volute passage 216. It will be appreciated that the sixth fluid junction 296 and the common segment 298 are optional components and that the first and second manifolds 278, 280 may fluidly connect to the second member 198 independent of each other.
  • the manifold system 191 may include one or more valves.
  • a first valve 297 i.e., first backflow valve
  • the first valve 297 may be operably supported, for example, on the intermediate segment 260 of the second manifold 228 of the first manifold arrangement 218.
  • a second valve 299 i.e., second backflow valve
  • the second valve 299 may be operably supported, for example, on the intermediate segment 294 of the second manifold 280 of the second manifold arrangement 222.
  • the first valve 297 and/or the second valve 299 may be one-way valves that are moveable between an open position and a closed position. With the first valve 297 in the open position, exhaust gas may flow in the downstream direction through the second manifold 228. Also, with the first valve 297 in the closed position, exhaust gas may be inhibited from flowing through the second manifold 228 in the upstream direction (i.e., from the common segment 264 toward the engine 125). Similarly, with the second valve 299 in the open position, exhaust gas may flow in the downstream direction through the second manifold 280. Also, with the second valve 299 in the closed position, exhaust gas may be inhibited from flowing through the second manifold 280 in the upstream direction (i.e., from the common segment 298 toward the engine 125).
  • first valve 297 and/or the second valves 299 may be passive valves, such as a one-way reed valve.
  • the first valve 297 and/or second valve 299 may also operate in a coordinated fashion with the second engine valves 237 of the second exhaust ports 233, 239, 241, 268, 272, 276.
  • the second engine valves 237 may be actively controlled (e.g., by the ECU 151) according to one or more variable conditions of the engine 125 to regulate exhaust flow through the second manifolds 228, 280.
  • the ECU 151 may control the second valves 237 to open during the exhaust cycles of the combustion chambers 124 so that exhaust gas flows into the second manifolds 228, 280. Pressure from these exhaust streams may passively open the first and second valves 297, 299 for flow toward the first and second volute passages 214, 216.
  • the ECU 151 may control the second valves 237 to remain closed during the exhaust cycles of the combustion chambers 124 so that exhaust is prevented from flowing downstream along the second manifolds 228, 280; additionally, the first and second valves 297, 299 may passively remain closed due to the higher pressure downstream (e.g., in the common segments 264, 298), thereby preventing backflow into the second manifolds 228, 280.
  • first valve 297 and/or second valve 299 may be configured differently without departing from the scope of the present disclosure.
  • the first and second valves 297, 299 may be active valves (e.g., rotary valves) with an associated actuator that may be controlled by the ECU 151.
  • the first and second valves 297, 299 are optional and may be omitted without departing from the scope of the present disclosure.
  • the method 300 may begin at 301 (e.g., upon engine startup).
  • the sensor 189 may detect a characteristic, such as the speed of the engine 125, the exhaust mass flow or other characteristic related to exhaust flow from the engine 125.
  • the sensor 189 may send an associated signal to the processor 199.
  • the processor 199 may process the signal and, at 304, the processor 199 may determine whether the detected current engine speed is greater than a predetermined threshold (e.g., threshold engine speed X).
  • the threshold speed X may have any suitable value and may be stored, for example, in a data storage device.
  • the method may continue at 306.
  • the processor 199 may generate and send control signals to the engine 125 such that the first engine valves 235 open during the respective exhaust cycle of the combustion chambers 124.
  • control signals may also cause the second engine valves 237 to remain in the closed position. Accordingly, exhaust from the first group 207 of the combustion chambers 124 may flow to the first volute passage 214 via the first manifold 226. There may be substantially no exhaust flow through the second manifold 228 because the second engine valves 237 remain closed, and the first valve 297 may remain closed to prevent backflow through the second manifold 228. Likewise, exhaust from the second group 213 of the combustion chambers 124 may flow to the second volute passage 216 via the first manifold 278, and there may be substantially no exhaust flow through the second manifold 280.
  • the method may continue at 308.
  • the processor 199 may generate and send control signals to the engine 125 such that the first engine valves 235 and the second engine valves 237 open during the respective exhaust cycle of the combustion chambers 124. Accordingly, exhaust from the first group 207 of the combustion chambers 124 may flow to the first volute passage 214 via the first manifold 226 and the second manifold 228. Likewise, exhaust from the second group 213 of the combustion chambers 124 may flow to the second volute passage 216 via the first manifold 278 and the second manifold 280.
  • the method 300 may end at 310 (e.g., when the engine is turned off). It will be appreciated that the method 300 may repeat continuously until the engine is turned off. Thus, the engine speed may be continuously and repeatedly sensed, and operation of the turbocharger system 100 and the manifold system 191 may be operated accordingly.
  • turbocharger system 100 is illustrated according to additional embodiments.
  • the turbocharger system 100 may be substantially similar to the embodiments of FIG. 2 except as noted. Components that correspond to those of FIG. 2 are indicated with corresponding reference numbers increased by 200.
  • the engine 325 may include a first chamber 402, a second chamber 404, a third chamber 406, and a fourth chamber 408. Accordingly, the engine 325 may be a four-cylinder engine.
  • the first and second chambers 402, 404 may be positioned in the engine 325 in an area that is opposite that of the third and fourth chambers 406, 408.
  • the first and second chambers 402, 404 may be positioned generally in the front of the engine 325 while the third and fourth chambers 406, 408 may be positioned generally in the rear of the engine 325.
  • the firing order of the combustion chambers 324 may have the following sequence: first chamber 402, third chamber 406, fourth chamber 408, and then second chamber 404.
  • the manifold system 391 may include a first manifold arrangement 418 and a second manifold arrangement 422.
  • the first manifold arrangement 418 may include the first manifold 426 and the second manifold 428
  • the second manifold arrangement 422 may include the first manifold 478 and the second manifold 480.
  • the first manifold arrangement 418 may fluidly connect the first group 407 of combustion chambers 324 to the first volute passage 214.
  • the second manifold arrangement 422 may fluidly connect the second group 413 of combustion chambers 324 to the second volute passage 216.
  • the first group 407 may include the first chamber 402 and the fourth chamber 408, and the second group 413 may include the second chamber 404 and the third chamber 406.
  • the first manifold arrangement 418 may be fluidly connected to combustion chambers 324 with nonconsecutive firing orders.
  • the second manifold arrangement 422 may be fluidly connected to combustion chambers 324 with nonconsecutive firing orders.
  • the turbocharger system 100 of FIG. 4 may operate as discussed above.
  • the turbocharger system 100 of FIG. 4 may operate according to the method 300 of FIG. 3 and described above.
  • the turbocharger system 100 and method 300 of the present application provide efficient and effective operations.
  • the system 100 may maintain separation between the flow paths from the engine 125, 325 to the volute passages 214, 216.
  • the available volume for exhaust flow may be relatively low because the first manifolds 226, 278, 426, 478 may provide open flow paths while the second manifolds 228, 280, 428, 480 are closed off. This may provide improved efficiency, for example, at relatively low engine speeds.
  • the available volume for exhaust gas flow may be selectively increased such that the first manifolds 226, 278, 426, 478 and the second manifolds 228, 280, 428, 480 cooperate to provide open flow paths. Accordingly, there is unlikely to be backpressure that would impede flow to the volute passages 214, 216.

Claims (14)

  1. Turboladersystem, ausgelegt zum Aufnehmen von Abgas von einer Kraftmaschine mit mehreren Brennkammern, wobei das Turboladersystem Folgendes umfasst:
    einen Turbinenabschnitt mit einem Turbinenrad (111), ein erstes Spiralelement mit einem ersten Spiraldurchgang (214) und ein zweites Spiralelement mit einem zweiten Spiraldurchgang (216), wobei der erste Spiraldurchgang dazu ausgelegt ist, Strom von Abgas in Richtung des Turbinenrads zu leiten, wobei der zweite Spiraldurchgang dazu ausgelegt ist, Strom von Abgas in Richtung des Turbinenrads zu leiten; und
    ein Krümmersystem (191), dazu ausgelegt, Abgas von den mehreren Brennkammern (124) zum ersten Spiraldurchgang und zum zweiten Spiraldurchgang zu leiten;
    wobei das Krümmersystem eine erste Krümmeranordnung (218) und eine zweite Krümmeranordnung (222) umfasst, wobei die erste Krümmeranordnung dazu ausgelegt ist, ein erstes Abgas von einer ersten Gruppe (207) der mehreren Brennkammern aufzunehmen und das erste Abgas zum ersten Spiralelement zu leiten, wobei die zweite Krümmeranordnung (222) dazu ausgelegt ist, ein zweites Abgas von einer zweiten Gruppe (213) der mehreren Brennkammern aufzunehmen und das zweite Abgas zum zweiten Spiralelement zu leiten;
    wobei die erste Krümmeranordnung fluidisch von der zweiten Krümmeranordnung getrennt ist;
    wobei die erste Krümmeranordnung einen ersten Krümmer (226) und einen zweiten Krümmer (228) umfasst, wobei der erste Krümmer und der zweite Krümmer der ersten Krümmeranordnung fluidisch mit den Brennkammern der ersten Gruppe und mit dem ersten Spiralelement verbunden sind;
    wobei die erste Krümmeranordnung dazu ausgelegt ist, in einem ersten Zustand und einem zweiten Zustand des Turboladersystems zu arbeiten;
    wobei, im ersten Zustand, die erste Krümmeranordnung dazu ausgelegt ist, Strom des ersten Abgases von der ersten Gruppe über den ersten Krümmer (226) der ersten Krümmeranordnung zum ersten Spiralelement zu leiten; und
    wobei, im zweiten Zustand, die erste Krümmeranordnung dazu ausgelegt ist, Strom des ersten Abgases von der ersten Gruppe über den ersten Krümmer (226) und den zweiten Krümmer (228) der ersten Krümmeranordnung (218) zum ersten Spiralelement zu leiten;
    dadurch gekennzeichnet, dass
    die zweite Krümmeranordnung (222) einen ersten Krümmer (278) und einen zweiten Krümmer (280) umfasst, wobei der erste Krümmer und der zweite Krümmer der zweiten Krümmeranordnung fluidisch mit den Brennkammern der zweiten Gruppe und mit dem zweiten Spiralelement verbunden sind;
    wobei die zweite Krümmeranordnung dazu ausgelegt ist, im ersten Zustand und im zweiten Zustand des Turboladersystems zu arbeiten;
    wobei, im ersten Zustand, die zweite Krümmeranordnung dazu ausgelegt ist, Strom des zweiten Abgases von der zweiten Gruppe über den ersten Krümmer (278) der zweiten Krümmeranordnung zum zweiten Spiralelement zu leiten; und wobei, im zweiten Zustand, die zweite Krümmeranordnung dazu ausgelegt ist, Strom des zweiten Abgases von der zweiten Gruppe über den ersten Krümmer (278) und den zweiten Krümmer (280) der zweiten Krümmeranordnung zum zweiten Spiralelement zu leiten.
  2. Turboladersystem nach Anspruch 1, wobei die erste Gruppe (207) von Brennkammern dazu ausgelegt ist, eine nicht fortlaufende Zündfolge zu haben, und wobei die zweite Gruppe (213) von Brennkammern dazu ausgelegt ist, eine nicht fortlaufende Zündfolge zu haben.
  3. Turboladersystem nach Anspruch 1, ferner umfassend ein erstes Ventil (297), das dazu ausgelegt ist, den Strom durch den zweiten Krümmer (228) der ersten Krümmeranordnung zu regeln, wenn das Turboladersystem zwischen dem ersten Zustand und dem zweiten Zustand wechselt; und
    ferner umfassend ein zweites Ventil (299), das dazu ausgelegt ist, den Strom durch den zweiten Krümmer der zweiten Krümmeranordnung zu regeln, wenn das Turboladersystem zwischen dem ersten Zustand und dem zweiten Zustand wechselt.
  4. Turboladersystem nach Anspruch 3, wobei das erste Ventil und das zweite Ventil Einwegventile sind, die zwischen einer offenen Position und einer geschlossenen Position bewegbar sind; und
    wobei das erste und das zweite Ventil dazu ausgelegt sind, sich zwischen der geschlossenen Position im ersten Zustand und der offenen Position im zweiten Zustand zu bewegen.
  5. Turboladersystem nach Anspruch 4, wobei die Einwegventile passive Ventile sind.
  6. Turboladersystem nach Anspruch 3, ferner umfassend eine Steuerung mit einem Prozessor (199) und einem Sensor (189);
    wobei der Sensor dazu ausgelegt ist, eine Charakteristik zu detektieren;
    wobei der Prozessor dazu ausgelegt ist, ein Signal von dem Sensor zu verarbeiten, das mit dem Sensor, der die Charakteristik detektiert, verknüpft ist; und
    wobei der Prozessor dazu ausgelegt ist, ein Steuersignal zum Steuern des ersten Ventils und des zweiten Ventils zumindest teilweise basierend auf dem Signal vom Sensor zu steuern.
  7. Turboladersystem nach Anspruch 6, wobei das zumindest eine aus dem ersten Ventil und dem zweiten Ventil ein Kraftmaschinenauslassventil von einer der mehreren Brennkammern ist.
  8. Turboladersystem nach Anspruch 1, wobei die Kraftmaschine insgesamt sechs Brennkammern hat.
  9. Turboladersystem nach Anspruch 1, wobei die Kraftmaschine insgesamt vier Brennkammern hat.
  10. Turboladersystem nach Anspruch 1, wobei der erste Krümmer und der zweite Krümmer der ersten Krümmeranordnung fluidisch an einer Verbindung verbunden sind; und
    wobei die Verbindung stromaufwärts des ersten Spiralelements angeordnet ist.
  11. Turboladersystem nach Anspruch 1, wobei der Turbinenabschnitt ein Turbinengehäuse mit einer zweiflutigen Anordnung umfasst;
    wobei das erste Spiralelement eine erste Spirale des Turbinengehäuses umfasst; und
    wobei das zweite Spiralelement eine zweite Spirale des Turbinengehäuses umfasst.
  12. Verfahren zum Betreiben eines Turboladersystems nach Anspruch 6, das Folgendes umfasst:
    Bestimmen, durch den Prozessor, der Charakteristik des Turboladersystems, der Charakteristik bezüglich des Stroms von Abgas von den mehreren Brennkammern;
    gezieltes Steuern, durch den Prozessor, des ersten Ventils und des zweiten Ventils zwischen einer ersten Position und einer zweiten Position basierend auf der bestimmten Charakteristik zum Ändern des Stroms durch das Krümmersystem.
  13. Verfahren nach Anspruch 12, wobei Bestimmen der Charakteristik Bestimmen einer Kraftmaschinendrehzahl umfasst.
  14. Verfahren nach Anspruch 13, ferner umfassend Vergleichen der bestimmten Kraftmaschinendrehzahl mit einer vorbestimmten Schwellendrehzahl; und
    wobei gezieltes Steuern des ersten Ventils und des zweiten Ventils gezieltes Steuern des ersten Ventils und des zweiten Ventils basierend auf dem Vergleich der bestimmten Kraftmaschinendrehzahl und der vorbestimmten Schwellendrehzahl umfasst.
EP18171726.5A 2017-06-26 2018-05-10 Abgaskrümmersystem für turboladervorrichtung mit mehreren spiralelementen Active EP3421752B1 (de)

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US15/632,611 US10570822B2 (en) 2017-06-26 2017-06-26 Exhaust manifold system for turbocharger device with plural volute members

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